Flowfield and Noise Dynamics of Supersonic Rectangular Impinging Jets: Major versus Minor Axis Orientations

Fluids Pub Date : 2024-07-24 DOI:10.3390/fluids9080169
Yogesh Mehta, Vikas N. Bhargav, Rajan Kumar
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Abstract

The current study explores the flowfield and noise characteristics of an ideally expanded supersonic (Mach 1.44) rectangular jet impinging on a flat surface. The existing literature is primarily concentrated on axisymmetric jets, known for their resonance dominance, pronounced unsteadiness, and acoustic signatures. In contrast, non-axisymmetric jets remain relatively less understood, particularly those impinging on a ground surface. By employing Schlieren imaging, high-frequency pressure measurements using high-bandwidth transducers, and particle image velocimetry (PIV), this research comprehensively examines the flow-acoustic phenomena. Schlieren imaging revealed distinct, coherent structures and strong acoustic waves, while pressure measurements at the impingement surface exhibited high-amplitude fluctuations, peaking at approximately 186 dB. Acoustic analysis identified multiple high-amplitude tones with unique directional characteristics, suggesting the potential for multiple simultaneous modes in rectangular jets. Furthermore, the PIV data elucidated differences in the jet shear layer and wall jet development attributed to the nozzle orientation. These findings contribute to a deeper understanding of non-axisymmetric jet behavior, offering insights relevant to fundamental flow physics and practical applications such as vertical takeoff and landing aircraft.
超音速矩形撞击射流的流场和噪声动力学:主轴方向与次轴方向
本研究探讨了理想膨胀超音速(1.44 马赫)矩形射流撞击平面时的流场和噪声特性。现有文献主要集中于轴对称射流,以其共振优势、明显的不稳定性和声学特征而著称。相比之下,人们对非轴对称射流的了解相对较少,尤其是那些撞击地面的射流。本研究通过使用 Schlieren 成像、使用高带宽传感器进行高频压力测量以及粒子图像测速仪(PIV),对流动声学现象进行了全面研究。Schlieren 成像显示了明显的相干结构和强声波,而撞击表面的压力测量显示了高振幅波动,峰值约为 186 dB。声学分析确定了具有独特方向特征的多个高振幅音调,表明矩形喷流中可能同时存在多个模式。此外,PIV 数据阐明了喷气剪切层和壁面喷流发展因喷嘴方向而产生的差异。这些发现有助于加深对非轴对称喷流行为的理解,为基础流动物理学和实际应用(如垂直起降飞机)提供了启示。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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